Blood Pressure ( SK 3 ) Channels Modulates +-Activated K 2 + Altered Expression of Small-Conductance Ca
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J. Adelman | A. Bonev | M. Nelson | D. Eckman | C. Bond | J. Brayden | T. Gross
[1] P. Vanhoutte,et al. Endothelium‐dependent hyperpolarization of canine coronary smooth muscle , 1988, British journal of pharmacology.
[2] J. Adelman,et al. Small‐Conductance Calcium‐Activated Potassium Channels , 1999, Annals of the New York Academy of Sciences.
[3] N. Stergiopulos,et al. Role of total arterial compliance and peripheral resistance in the determination of systolic and diastolic aortic pressure. , 1999, Pathologie-biologie.
[4] J. M. Doughty,et al. Charybdotoxin and apamin block EDHF in rat mesenteric artery if selectively applied to the endothelium. , 1999, The American journal of physiology.
[5] P. Vanhoutte,et al. Characterization of an apamin‐sensitive small‐conductance Ca2+‐activated K+ channel in porcine coronary artery endothelium: relevance to EDHF , 2002, British journal of pharmacology.
[6] H. Coleman,et al. EDHF is not K+ but may be due to spread of current from the endothelium in guinea pig arterioles. , 2001, American journal of physiology. Heart and circulatory physiology.
[7] D M Bers,et al. A practical guide to the preparation of Ca2+ buffers. , 1994, Methods in cell biology.
[8] W. Bayliss. On the local reactions of the arterial wall to changes of internal pressure , 1902, The Journal of physiology.
[9] A. Weston,et al. Endothelium-derived hyperpolarizing factor: a new endogenous inhibitor from the vascular endothelium. , 1988, Trends in pharmacological sciences.
[10] M. J. Davis,et al. Signaling mechanisms underlying the vascular myogenic response. , 1999, Physiological reviews.
[11] R. Bryan,et al. Effect of NO on EDHF response in rat middle cerebral arteries. , 2002, American journal of physiology. Heart and circulatory physiology.
[12] Takashi Saito,et al. Flow-Induced Dilation of Human Coronary Arterioles , 2001 .
[13] C. Garland,et al. K+ is an endothelium-derived hyperpolarizing factor in rat arteries , 1998, Nature.
[14] A. Bonev,et al. Gender differences in coronary artery diameter involve estrogen, nitric oxide, and Ca(2+)-dependent K+ channels. , 1996, Circulation research.
[15] J. Hodgin,et al. A noninvasive computerized tail-cuff system for measuring blood pressure in mice. , 1995, Hypertension.
[16] R. Moreau,et al. Role of small-conductance Ca2+-dependent K+ channels in in vitro nitric oxide-mediated aortic hyporeactivity to alpha-adrenergic vasoconstriction in rats with cirrhosis. , 2001, Journal of hepatology.
[17] H. Coleman,et al. Involvement of Myoendothelial Gap Junctions in the Actions of Endothelium-Derived Hyperpolarizing Factor , 2002, Circulation research.
[18] J B Patlak,et al. Calcium channels, potassium channels, and voltage dependence of arterial smooth muscle tone. , 1990, The American journal of physiology.
[19] J. Brayden,et al. Apamin‐sensitive K+ channels mediate an endothelium‐dependent hyperpolarization in rabbit mesenteric arteries. , 1995, The Journal of physiology.
[20] Michael J. Mulvany,et al. Location of Resistance Arteries , 2001, Journal of Vascular Research.
[21] P. Seeburg,et al. Respiration and parturition affected by conditional overexpression of the Ca2+-activated K+ channel subunit, SK3. , 2000, Science.
[22] A. Pries,et al. Impaired Hyperpolarization in Regenerated Endothelium After Balloon Catheter Injury , 2001, Circulation research.
[23] M. Frieden,et al. Substance P and bradykinin activate different types of KCa currents to hyperpolarize cultured porcine coronary artery endothelial cells , 1999, The Journal of physiology.
[24] Y. Hattori,et al. Alterations in EDHF‐mediated hyperpolarization and relaxation in mesenteric arteries of female rats in long‐term deficiency of oestrogen and during oestrus cycle , 2001, British journal of pharmacology.
[25] K. Magleby,et al. Single apamin-blocked Ca-activated K+ channels of small conductance in cultured rat skeletal muscle , 1986, Nature.
[26] G. G. Emerson,et al. Electrical activation of endothelium evokes vasodilation and hyperpolarization along hamster feed arteries. , 2001, American journal of physiology. Heart and circulatory physiology.
[27] S. Olesen,et al. Apamin interacts with all subtypes of cloned small-conductance Ca2+-activated K+ channels , 2000, Pflügers Archiv.
[28] H Shimokawa,et al. Hydrogen peroxide is an endothelium-derived hyperpolarizing factor in mice. , 2000, The Journal of clinical investigation.
[29] R. Furchgott,et al. The obligatory role of endothelial cells in the relaxation of arterial smooth muscle by acetylcholine , 1980, Nature.
[30] R. Busse,et al. Mechanisms controlling the production of endothelial autacoids. , 1989, Zeitschrift fur Kardiologie.
[31] P. Vanhoutte,et al. Endothelium-dependent hyperpolarization of vascular smooth muscle cells. , 2000, Acta pharmacologica Sinica.
[32] J. Adelman,et al. Determinants contributing to estrogen-regulated expression of SK3. , 2003, Biochemical and biophysical research communications.
[33] M. Nelson,et al. Regulation of arterial diameter and wall [Ca2+] in cerebral arteries of rat by membrane potential and intravascular pressure , 1998, The Journal of physiology.
[34] R. Karas,et al. The protective effects of estrogen on the cardiovascular system. , 2002, The New England journal of medicine.
[35] P. Pratt,et al. Identification of epoxyeicosatrienoic acids as endothelium-derived hyperpolarizing factors. , 1996, Circulation research.
[36] O. Rønnekleiv,et al. Distribution, Neuronal Colocalization, and 17β-E2 Modulation of Small Conductance Calcium-Activated K+ Channel (SK3) mRNA in the Guinea Pig Brain. , 2002, Endocrinology.
[37] I. Laher,et al. Heterogeneity of endothelium-dependent vasodilation in pressurized cerebral and small mesenteric resistance arteries of the rat. , 1999, The Journal of pharmacology and experimental therapeutics.
[38] C. Triggle,et al. Endothelium-derived relaxing factors: a focus on endothelium-derived hyperpolarizing factor(s). , 2001, Canadian journal of physiology and pharmacology.
[39] D. Strøbæk,et al. The Ca2+-activated K+ channel of intermediate conductance: a molecular target for novel treatments? , 2001, Current drug targets.